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Rosa26-GFP Direct Repeat (RaDR-GFP) Mice Reveal Tissue- and Age-Dependence of Homologous Recombination in Mammals <i>In Vivo</i>
Michelle R. Sukup-Jackson, Orsolya Király, Jennifer E. Kay, Li Na, Elizabeth A. Rowland, Kelly E. Winther, Danielle N. Chow, Takafumi Kimoto, Tetsuya Matsuguchi, Vidya S. Jonnalagadda, Vilena I. Maklakova, Vijay Raj Singh, Dushan N. Wadduwage, Jagath C. Rajapakse, Peter T. C. So
Figshare · 2016 · ▲ 48 citations
Abstract
<div><p>Homologous recombination (HR) is critical for the repair of double strand breaks and broken replication forks. Although HR is mostly error free, inherent or environmental conditions that either suppress or induce HR cause genomic instability. Despite its importance in carcinogenesis, due to limitations in our ability to detect HR <i>in vivo</i>, little is known about HR in mammalian tissues. Here, we describe a mouse model in which a direct repeat HR substrate is targeted to the ubiquitously expressed <i>Rosa26</i> locus. In the <i><u>R</u>os<u>a</u>26</i><u>D</u>irect <u>R</u>epeat-GFP (RaDR-GFP) mice, HR between two truncated <i>EGFP</i> expression cassettes can yield a fluorescent signal. In-house image analysis software provides a rapid method for quantifying recombination events within intact tissues, and the frequency of recombinant cells can be evaluated by flow cytometry. A comparison among 11 tissues shows that the frequency of recombinant cells varies by more than two orders of magnitude among tissues, wherein HR in the brain is the lowest. Additionally, <i>de novo</i> recombination events accumulate with age in the colon, showing that this mouse model can be used to study the impact of chronic exposures on genomic stability. Exposure to N-methyl-N-nitrosourea, an alkylating agent similar to the cancer chemotherapeutic temozolomide, shows that the colon, liver and pancreas are susceptible to DNA damage-induced HR. Finally, histological analysis of the underlying cell types reveals that pancreatic acinar cells and liver hepatocytes undergo HR and also that HR can be specifically detected in colonic somatic stem cells. Taken together, the RaDR-GFP mouse model provides new understanding of how tissue and age impact susceptibility to HR, and enables future studies of genetic, environmental and physiological factors that modulate HR in mammals.</p></div>
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- 10.1371/journal.pgen.1004299
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- 2026-06-02 MST
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APA
Sukup-Jackson, M.R., Király, O., Kay, J.E., Na, L., Rowland, E.A., Winther, K.E., Chow, D.N., Kimoto, T., Matsuguchi, T., Jonnalagadda, V.S., Maklakova, V.I., Singh, V.R., Wadduwage, D.N., Rajapakse, J.C., So, P.T.C., Collier, L.S., & Engelward, B.P. (2016). Rosa26-GFP Direct Repeat (RaDR-GFP) Mice Reveal Tissue- and Age-Dependence of Homologous Recombination in Mammals <i>In Vivo</i>. <em>Figshare</em>. https://doi.org/10.1371/journal.pgen.1004299
Vancouver
Sukup-Jackson MR, Király O, Kay JE, Na L, Rowland EA, Winther KE, et al. Rosa26-GFP Direct Repeat (RaDR-GFP) Mice Reveal Tissue- and Age-Dependence of Homologous Recombination in Mammals <i>In Vivo</i>. Figshare. 2016. doi:10.1371/journal.pgen.1004299.
BibTeX
@unpublished{michelle2016RosaGF,
title = {Rosa26-GFP Direct Repeat (RaDR-GFP) Mice Reveal Tissue- and Age-Dependence of Homologous Recombination in Mammals <i>In Vivo</i>},
author = {Michelle R. Sukup-Jackson and Orsolya Király and Jennifer E. Kay and Li Na and Elizabeth A. Rowland and Kelly E. Winther and Danielle N. Chow and Takafumi Kimoto and Tetsuya Matsuguchi and Vidya S. Jonnalagadda and Vilena I. Maklakova and Vijay Raj Singh and Dushan N. Wadduwage and Jagath C. Rajapakse and Peter T. C. So and Lara S. Collier and Bevin P. Engelward},
journal = {Figshare},
year = {2016},
doi = {10.1371/journal.pgen.1004299},
}
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